Chin J Plant Ecol ›› 2011, Vol. 35 ›› Issue (6): 653-662.DOI: 10.3724/SP.J.1258.2011.00653
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SHAN Chang-Juan1,2, HAN Rui-Lian1, LIANG Zong-Suo1,*()
Received:
2011-01-14
Accepted:
2011-03-18
Online:
2011-01-14
Published:
2011-06-30
Contact:
LIANG Zong-Suo
SHAN Chang-Juan, HAN Rui-Lian, LIANG Zong-Suo. Responses to drought stress of the biosynthetic and recycling metabolism of glutathione and ascorbate in Agropyron cristatum leaves on the Loess Plateau of China[J]. Chin J Plant Ecol, 2011, 35(6): 653-662.
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URL: https://www.plant-ecology.com/EN/10.3724/SP.J.1258.2011.00653
Fig. 1 Effects of drought stress on the activities of ascorbate peroxidase (APX) (A), glutathione reductase (GR) (B), dehydroascorbate reductase (DHAR) (C) and monodehydroascorbate reductase (MDHAR) (D) in the leaves of Agropyron cristatum (mean ± SE). N, M, S stand for normal water treatment, moderate drought treatment and serious drought treatment, respectively. Small letters stand for the significant difference at p = 0.05 level.
Fig. 2 Effects of drought stress on the activities of galactonolactone dehydrogenase (GalLDH) (A) and gamma glutamyl cysteine synthetase (γ-ECS) (B) in the leaves of Agropyron cristatum (mean ± SE). N, M, S stand for normal water treatment, moderate drought treatment and serious drought treatment, respectively. Small letters stand for the significant difference at p = 0.05 level.
Fig. 3 Effects of drought stress on the contents of reduced ascorbate (AsA) (A), total ascorbate (B), reduced glutathione (GSH) (C) and total glutathione (D) in the leaves of Agropyron cristatum (mean ± SE). N, M, S stand for normal water treatment, moderate drought treatment and serious drought treatment, respectively. Small letters stand for the significant difference at p = 0.05 level.
Fig. 4 Effects of drought stress on reduced ascorbate/dehydroascorbate acid (AsA/DHA) (A) and reduced glutathione/oxidized glutathione (GSH/GSSG) (B) in the leaves of Agropyron cristatum (mean ± SE). N, M, S stand for normal water treatment, moderate drought treatment and serious drought treatment, respectively. Small letters stand for the significant difference at p = 0.05 level.
Fig. 5 Effects of drought stress on the contents of H2O2 (A) and malondialdehyde (MDA) (B) in the leaves of Agropyron cristatum (mean ± SE). N, M, S stand for normal water treatment, moderate drought treatment and serious drought treatment, respectively. Small letters stand for the significant difference at p = 0.05 level.
测定指标 Parameters | N | M | M + A | M + BSO | S | S + A | S + BSO |
---|---|---|---|---|---|---|---|
H2O2 (μmol·g-1 DW) | 9.5 ± 0.88e | 20.5 ± 1.59d | 27.0 ± 1.99c | 29.3 ± 2.17c | 39.2 ± 3.06b | 47.7 ± 4.29a | 52.0 ± 4.75a |
MDA (nmol·g-1 DW) | 35.0 ± 2.65e | 64.5 ± 5.41d | 73.0 ± 6.13c | 77.1 ± 6.43c | 106.0 ± 8.55b | 120.0 ± 9.36a | 128.0 ± 9.02a |
Table 1 Effects of biosynthetic inhibitors for ascorbate and glutathione on the contents of H2O2 and MDA in leaves of Agropyron cristatum of under drought stress (mean ± SE)
测定指标 Parameters | N | M | M + A | M + BSO | S | S + A | S + BSO |
---|---|---|---|---|---|---|---|
H2O2 (μmol·g-1 DW) | 9.5 ± 0.88e | 20.5 ± 1.59d | 27.0 ± 1.99c | 29.3 ± 2.17c | 39.2 ± 3.06b | 47.7 ± 4.29a | 52.0 ± 4.75a |
MDA (nmol·g-1 DW) | 35.0 ± 2.65e | 64.5 ± 5.41d | 73.0 ± 6.13c | 77.1 ± 6.43c | 106.0 ± 8.55b | 120.0 ± 9.36a | 128.0 ± 9.02a |
Fig. 6 Effects of drought stress on the plant height (A) and total biomass (B) per plant of Agropyron cristatum (mean ± SE). N, M, S stand for normal water treatment, moderate drought treatment and serious drought treatment, respectively. Small letters stand for the significant difference at p = 0.05 level.
[1] | Bartoli CG, Guiamet JJ, Kiddle G, Pastori GM, Di Cagno R, Theodoulou FL, Foyer CH (2005). Ascorbate content of wheat leaves is not determined by maximal L-galactono-1, 4-lactone dehydrogenase (GalLDH) activity under drought stress. Plant, Cell & Environment, 28, 1073-1081. |
[2] |
Bradford MM (1976). A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Analytical Biochemistry, 72, 248-254.
DOI URL PMID |
[3] | Chen KM (陈坤明) (2003). Antioxidant Defense Systems and Redox Balance of Plants Responding to Environmental Stresses (植物逆境抗氧化系统和逆境氧化还原平衡). PhD dissertation, Lanzhou University, Lanzhou. (in Chinese with English abstract) |
[4] |
Dalton DA, Russell SA, Hanus FJ, Pascoe GA, Evans HJ (1986). Enzymatic reactions of ascorbate and glutathione that prevent peroxide damage in soybean root nodules. Proceedings of the National Academy of Sciences of the United States of America, 83, 3811-3815.
DOI URL PMID |
[5] | Gao HJ (高海娟), Yun JF (云锦凤), Liu DF (刘德福) (2007). Study on seed germination of three wheatgrass species in desert steppe. Pratacultural Science (草业科学), 24(5), 64-68. (in Chinese with English abstract) |
[6] |
Grace SC, Logan BA (1996). Acclimation of foliar antioxidant systems to growth irradiance in three broad-leaved evergreen species. Plant Physiology, 112, 1631-1640.
DOI URL PMID |
[7] |
Griffith OW (1980). Determination of glutathione and glutathione disulfide using glutathione reductase and 2-vinylpyridine. Analytical Biochemistry, 106, 207-212.
URL PMID |
[8] |
Hodges DM, Andrews CJ, Johnson DA, Hamilton RI (1996). Antioxidant compound responses to chilling stress in differentially sensitive inbred maize lines. Physiologia Plantarum, 98, 685-692.
DOI URL |
[9] |
Hodges DM, DeLong JM, Forney CF, Prange RK (1999). Improving the thiobarbituric acid-reactive-substances assay for estimating lipid peroxidation in plant tissues containing anthocyanin and other interfering compounds. Planta, 207, 604-611.
DOI URL |
[10] |
Jiang MY, Zhang JH (2002). Water stress-induced abscisic acid accumulation triggers the increased generation of reactive oxygen species and up-regulates the activities of antioxidant enzymes in maize leaves. Journal of Experimental Botany, 53, 2401-2410.
URL PMID |
[11] | Li JX (李景欣), Yun JF (云锦凤), Su BD (苏布道), Wuren TY (乌仁图雅), Yiru GLT (义如格乐图) (2004). Study on the drought resistance comparision of 6 populations of Agropyron cristatum in the germination period and seedling stage. Journal of Arid Land Resources and Environment (干旱区资源与环境), 18(5), 163-167. (in Chinese with English abstract) |
[12] | Luo XY (罗新义), Tan DH (谭大海), Sha W (沙伟) (2005). Effect of osmotic stress on activities of protective enzymes system in Agropyron cristatum. Journal of Qiqihar University (Natural Science Edition) (齐齐哈尔大学学报(自然科学版)), 21(4), 94-96. (in Chinese with English abstract) |
[13] | Ma YH (马玉华), Ma FW (马锋旺), Ma XW (马小卫), Li MJ (李明军), Wang YH (王永红), Han MY (韩明玉), Shu HR (束怀瑞) (2008). Effects of drought stress on ascorbic acid contents and activities of related metabolic enzymes in apple leaves. Journal of Northwest A & F University (Natural Science Edition) (西北农林科技大学学报(自然科学版)), 36(3), 150-154. (in Chinese with English abstract) |
[14] | Miyake C, Asada K (1992). Thylakoid-bound ascorbate peroxidase in spinach chloroplasts and photoreduction of its primary oxidation product monodehydroascorbate radicals in thylakoids. Plant & Cell Physiology, 33, 541-553. |
[15] | Nakano Y, Asada K (1981). Hydrogen peroxide is scavenged by ascorbate specific peroxidase in spinach chloroplasts. Plant & Cell Physiology, 22, 867-880. |
[16] |
Pinheiro HA, DaMatta FM, Chaves ARM, Fontes EPB, Loureiro ME (2004). Drought tolerance in relation to protection against oxidative stress in clones of Coffea canephora subjected to long-term drought. Plant Science, 167, 1307-1314.
DOI URL |
[17] |
Rüegsegger A, Brunold C (1992). Effect of cadmium on γ-glutamylcysteine synthesis in maize seedlings. Plant Physiology, 99, 428-433.
DOI URL PMID |
[18] |
Selote DS, Khanna-Chopra R (2006). Drought acclimation confers oxidative stress tolerance by inducing co-ordinated antioxidant defense at cellular and subcellular level in leaves of wheat seedlings. Physiologia Plantarum, 127, 494-500.
DOI URL |
[19] |
Shao HB, Chu LY, Shao MA, Jaleel CA, Mi HM (2008). Higher plant antioxidants and redox signaling under environmental stresses. Comptes Rendus Biologies, 331, 433-441.
URL PMID |
[20] |
Sharma SS, Dietz KJ (2006). The significance of amino acids and amino acid-derived molecules in plant responses and adaptation to heavy metal stress. Journal of Experimental Botany, 57, 711-726.
DOI URL PMID |
[21] |
Šircelj H, Tausz M, Grill D, Batič F (2005). Biochemical responses in leaves of two apple tree cultivars subjected to progressing drought. Journal of Plant Physiology, 162, 1308-1318.
DOI URL PMID |
[22] |
Tabata K, Ôba K, Suzuki K, Esaka M (2001). Generation and properties of ascorbic acid-deficient transgenic tobacco cells expressing antisense RNA of L-galactono-1, 4-lactone dehydrogenase. The Plant Journal, 27, 139-148.
DOI URL PMID |
[23] | Tang L (唐龙) (2005). Studies on Water Physiological Ecology Characteristics of 4 Native Herbs Communities in Loess Hill Region (陕北黄土丘陵区四种乡土草种水分生理生态特征研究). Master dissertation, Northwest A & F University, Yangling, Shaanxi. (in Chinese with English abstract) |
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